College of Materials Science and Engineering, Qingdao University of Science and Technology, Qingdao, 266042, People's Republic of China.
Key Laboratory of Marine Environmental Corrosion and Bio-Fouling, Institute of Oceanology, Chinese Academy of Sciences, Qingdao, 266071, China.
Mikrochim Acta. 2023 Nov 22;190(12):475. doi: 10.1007/s00604-023-06071-9.
A surface-enhanced Raman scattering nanoprobe has been developed for sulfide detection and applied to complex bacterial biofilms. The nanoprobe, Au@4-MBN@Ag@ZIF-8, comprised a gold core modified with 4-mercaptobenzonitrile (4-MBN) as signaling source, a layer of silver shell as the sulfide sensitization material, and a zeolitic imidazolate framework-8 (ZIF-8) as surface barrier. ZIF-8, with its high surface area and mesoporous structure, was applied to preconcentrate sulfide around the nanoprobe with its excellent adsorption capacity. Besides, the external wrapping of ZIF-8 can not only prevent the interference of biomolecules, such as proteins, with the Au@4-MBN@Ag assay but also enhance the detection specificity through the sulfide cleavage function towards ZIF-8. These properties are critical for the application of this nanoprobe to complex environmental scenarios. In the presence of sulfide, it was first enriched through adsorption by the outer ZIF-8 layer, then destroyed the barrier layer, and subsequently reacted with the Ag shell, leading to changes in the Raman signal. Through this rational design, the Au@4-MBN@Ag@ZIF-8 nanoprobe exhibited excellent detection sensitivity, with a sulfide detection limit in the nanomolar range and strong linearity in the concentration range 50 nM to 500 μM. Furthermore, the proposed Au@4-MBN@Ag@ZIF-8 nanoprobe was effectively utilized for sulfide detection in intricate biofilm matrices, demonstrating its robust selectivity and reproducibility.
一种用于硫化物检测的表面增强拉曼散射纳米探针已被开发出来,并应用于复杂的细菌生物膜。该纳米探针由一个金核组成,金核修饰有 4-巯基苯甲腈(4-MBN)作为信号源,一层银壳作为硫化物敏化材料,沸石咪唑酯骨架-8(ZIF-8)作为表面阻挡层。ZIF-8 具有高比表面积和介孔结构,可用于通过其优异的吸附能力在纳米探针周围预浓缩硫化物。此外,ZIF-8 的外部包裹不仅可以防止蛋白质等生物分子与 Au@4-MBN@Ag 测定的干扰,还可以通过对 ZIF-8 的硫化物裂解功能增强检测特异性。这些特性对于该纳米探针在复杂环境场景中的应用至关重要。在存在硫化物的情况下,它首先通过外层 ZIF-8 层的吸附进行富集,然后破坏阻挡层,随后与银壳反应,导致拉曼信号发生变化。通过这种合理的设计,Au@4-MBN@Ag@ZIF-8 纳米探针表现出优异的检测灵敏度,硫化物检测限在纳摩尔范围内,在 50 nM 至 500 μM 的浓度范围内具有很强的线性。此外,所提出的 Au@4-MBN@Ag@ZIF-8 纳米探针有效地用于复杂生物膜基质中的硫化物检测,表现出良好的选择性和重现性。